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10.1007/s10916-021-01747-2

http://scihub22266oqcxt.onion/10.1007/s10916-021-01747-2
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34081193!8173860!34081193
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suck abstract from ncbi

pmid34081193      J+Med+Syst 2021 ; 45 (7): 71
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  • Covid-19 Imaging Tools: How Big Data is Big? #MMPMID34081193
  • Santosh KC; Ghosh S
  • J Med Syst 2021[Jun]; 45 (7): 71 PMID34081193show ga
  • In this paper, considering year 2020 and Covid-19, we analyze medical imaging tools and their performance scores in accordance with the dataset size and their complexity. For this, we mainly consider AI-driven tools that employ two different types of image data, namely chest Computed Tomography (CT) and X-ray. We elaborate on their strengths and weaknesses by taking the following important factors into account: i) dataset size; ii) model fitting criteria (over-fitting and under-fitting); iii) transfer learning in the deep learning era; and iv) data augmentation. Medical imaging tools do not explicitly analyze model fitting. Also, using transfer learning, with fewer data, one could possibly build Covid-19 deep learning model but they are limited to education and training. We observe that, in both image modalities, neither the dataset size nor does data augmentation work well for Covid-19 screening purposes because a large dataset does not guarantee all possible Covid-19 manifestations and data augmentation does not create new Covid-19 cases.
  • |*Big Data[MESH]
  • |*Radiography, Thoracic[MESH]
  • |*Tomography, X-Ray Computed[MESH]
  • |COVID-19/*diagnostic imaging[MESH]
  • |Deep Learning[MESH]


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